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Photoexcitation of Complex Molecular Systems through Combined FirstPrinciples...
全球变化科学紫荆论坛第439期:基于850hPa相对涡度的热带气旋路径追踪识别方法
Controlling the Structure of Inference and Learning in Neural Networks
环境学术沙龙第698期:城市水系统综合管理:关键铁盐化学品的生产与利用
报告题目:
Fluidics: Interfacing Biology, Mechanics, and Photonics in the Micro/Nano Scale
 报告人:
Tony Jun Huang
James Henderson Endowed Assistant Professor
Department of Engineering Science and Mechanics
Pennsylvania State University
报告时间:
2008-06-26 10:00
报告地点:
清华大学精仪系9003大楼4304会议室
主办单位:
精仪系
  简介:

Dr. Huang received his Ph.D. degree in Mechanical and Aerospace Engineering from the University of California, Los Angeles (UCLA) in 2005, and his B.S. and M.S. degrees in Energy and Power Engineering from Xi’an Jiaotong University, Xi’an, China, in 1996 and 1999, respectively.  Currently, he is the James Henderson Assistant Professor in the Department of Engineering Science and Mechanics at The Pennsylvania State University.  His research interests include Biomedical NanoElectroMechanicalSystems (BioNEMS), Active Plasmonics, Molecular Mechanics, Nanomaterials/Nanodevices, and Micro fluidics. During his young career, he has received awards and honors such as the 2006 Rustum and Della Roy Innovation in Materials Research Award, by The Pennsylvania State University; “One of the five most intriguing articles in the third quarter of 2005”, by CAS Science Spotlight; the James Henderson Endowed Professorship, by The Pennsylvania State University; Outstanding Ph.D. Award, by UCLA School of Engineering.

 

ABSRACT

Microfluidics is a powerful tool that allows the precise control and manipulation of microliter to nanoliter fluid volumes. In the past two years, the Penn State Biofucntionalized NanoElectroMechanicalSystems (BioNEMS) laboratory has established microfluidic approaches as unique platforms to achieve a fundamental understanding of multiphysics (e.g., biology, fluidics, photonics, acoustics, mechanics) at micro/nano scale and the integration and automation of complex tasks that are difficult to achieve otherwise. This talk will summarize our progress along this line, including tunable optofluidic lens, three-dimensional (3-D) hydrodynamic focusing, and track-free dynamic patterning of biomolecules.
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